Transition from Jaynes-Cummings to Autler-Townes ladder in a quantum dot-microcavity system
arXiv:1609.03462 · doi:10.1103/PhysRevB.95.035302
Abstract
We study experimentally and theoretically a coherently-driven strongly-coupled quantum dot-microcavity system. Our focus is on physics of the unexplored intermediate excitation regime where the resonant laser field dresses a strongly-coupled single exciton-photon (polariton) system resulting in a ladder of laser-dressed Jaynes-Cummings states. In that case both the coupling of the emitter to the confined light field of the microcavity and to the light field of the external laser are equally important, as proved by observation of injection pulling of the polariton branches by an external laser. This intermediate interaction regime is of particular interest since it connects the purely quantum mechanical Jaynes-Cummings ladder and the semi-classical Autler-Townes ladder. Exploring the driving strength-dependence of the mutually coupled system we establish the maximum in the resonance fluorescence signal to be a robust fingerprint of the intermediate regime and observe signatures indicating the laser-dressed Jaynes-Cummings ladder. In order to address the underlying physics we excite the coupled system via the matter component of fermionic nature undergoing saturation - in contrast to commonly used cavity-mediated excitation.
12 pages, 8 figures
References in corpus (9)
- The Quantum Internet
- Climbing the Jaynes-Cummings Ladder and Observing its Sqrt(n) Nonlinearity in a Cavity QED System
- Nonlinear response of the vacuum Rabi resonance
- Strong-coupling of quantum dots in microcavities
- Photon Shot Noise Dephasing in the Strong-Dispersive Limit of Circuit QED
- Two-photon interference using background-free quantum frequency conversion of single photons from a semiconductor quantum dot
- Conditional control of the quantum states of remote atomic memories for quantum networking
- Vacuum Rabi spectra of a single quantum emitter
- Towards high cooperativity strong coupling of a quantum dot in a tunable microcavity